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Featured researches published by Jianpeng Li.


Scientific Reports | 2016

Large-scale synthesis of hybrid metal oxides through metal redox mechanism for high-performance pseudocapacitors

Zhonghua Ren; Jianpeng Li; Yaqi Ren; Shuguang Wang; Yejun Qiu; Jie Yu

Electrochemical performance and production cost are the main concerns for the practical application of supercapacitors. Here we report a simple and universally applicable method to prepare hybrid metal oxides by metal redox reaction utilizing the inherent reducibility of metals and oxidbility of for the first time. As an example, Ni(OH)2/MnO2 hybrid nanosheets (NMNSs) are grown for supercapacitor application by self-reaction of Ni foam substrates in KMnO4 solution at room temperature. The obtained hybrid nanosheets exhibit high specific capacitance (2,937 F g−1). The assembled solid-state asymmetric pseudocapacitors possess ultrahigh energy density of 91.13 Wh kg−1 (at the power density of 750 W kg−1) and extraordinary cycling stability with 92.28% capacitance retention after 25,000 cycles. Co(OH)2/MnO2 and Fe2O3/MnO2 hybrid oxides are also synthesized through this metal redox mechanism. This green and low-cost method is capable of large-scale production and one-step preparation of the electrodes, holding promise for practical application of high-performance pseudocapacitors.


RSC Advances | 2014

Activated carbon with micrometer-scale channels prepared from luffa sponge fibers and their application for supercapacitors

Jianpeng Li; Zhonghua Ren; Yaqi Ren; Lei Zhao; Shuguang Wang; Jie Yu

In this paper, we report the preparation of macrochanneled activated carbon (MCAC) with a novel structure combining micropores, mesopores, and macrochannels and its electrochemical properties for supercapacitor applications. The MCAC was prepared by carbonizing luffa sponge fibers and subsequent activation with KOH. The MCAC has densely packed and parallel channels of 4–10 μm in diameter and 0.3–1 μm in wall thickness, which are inherited from the natural structure of the luffa sponge fibers. Micro- and mesopores were produced on the inner surface of the channel walls, forming a hierarchically porous structure. The MCAC exhibits excellent electrochemical performance for application as electrode materials of supercapacitors in appropriate electrolytes. The specific capacitances of the MCAC at 1 A g−1 are 167, 196, and 249 F g−1 in Na2SO4, KOH, and H2SO4 solutions, respectively. The MCAC materials reported here may have broad applications such as for supercapacitors, catalysis, and templates for supporting various functional materials.


RSC Advances | 2014

Cotton-based hollow carbon fibers with high specific surface area prepared by ammonia etching for supercapacitor application

Shuguang Wang; Zhonghua Ren; Jianpeng Li; Yaqi Ren; Lei Zhao; Jie Yu

In this paper, carbon fibers with a high specific surface area (SSA) have been prepared from cotton for supercapacitor application. The cotton-based carbon fibers (CCFs) are prepared by carbonizing the cotton fibers in ammonia (NH3) and nitrogen gases at different temperatures. The CCFs possess a hollow tubular structure with an outer diameter of about 7 μm and an inner diameter of about 3 μm. The hollow structure is inherited from the natural structure of the cotton fibers. The SSA and pore structure of the CCFs depend on the carbonizing temperature and atmosphere. The CCFs carbonized in NH3 have high SSA up to 778.6 m2 g−1 with higher mesopore ratio. Higher nitrogen concentration (3.3 at%) and more CO functional groups are present in the CCFs carbonized in NH3. The maximum specific capacitance of the CCFs carbonized in NH3 is measured to be 355 F g−1 at 1 A g−1, 245.3 F g−1 at 0.8 A g−1, and 181.3 F g−1 at 0.2 A g−1 in KOH, H2SO4, and Na2SO4 electrolytes, respectively. The tubular structure, high SSA, higher mesopore ratio, nitrogen doping, and the presence of the oxygen functional groups are responsible for the excellent electrochemical performance. Comparing with the conventional activation process using KOH as an etchant the present process by NH3 etching to prepare high SSA carbon materials has the advantages of simplicity, no contaminants, and higher mesopore ratio.


Journal of Materials Chemistry | 2015

Aligned polyaniline nanowires grown on the internal surface of macroporous carbon for supercapacitors

Jianpeng Li; Yaqi Ren; Zhonghua Ren; Shuguang Wang; Yejun Qiu; Jie Yu

High utilization efficiency of electrode materials is of great importance for achieving excellent electrochemical performance of supercapacitors. In this paper, we report the growth of aligned polyaniline (PANI) nanowires on the internal surface of macroporous carbon (MC) derived from luffa sponge fibers for increasing their utilization efficiency. The pores in the MC are densely packed, straight, and parallel with the diameter at the micrometer scale, which provide easy paths for reaction solution to penetrate and thus enable the growth of the PANI nanowires on the internal wall surface. Due to full exposure to the electrolyte, the PANI nanowires exhibit high utilization efficiency, leading to high specific capacitance up to 1500 F g−1 (1 A g−1). As the macropores allow easy penetration of the electrolyte, the PANI nanowires show high rate capability with the capacitance retention up to 70% with increasing current density from 1 to 10 A g−1. Symmetric supercapacitors assembled using the MC/PANI materials possess high energy density (19 W h kg−1 at 0.5 kW kg−1) and long cycle life (83% retention after 7000 cycles). Considering the abundance and green production of the luffa sponge the MC/PANI composites are promising for industrial application of supercapacitors.


RSC Advances | 2015

Solvothermal synthesis of a dendritic TiNxOy nanostructure for oxygen reduction reaction electrocatalysis

Yaqi Ren; Zhonghua Ren; Jianpeng Li; Shuguang Wang; Jie Yu

A novel dendritic titanium oxynitride (TiNxOy) nanostructure composed of nanowires of 15–20 nm in diameter has been prepared. The dendritic TiNxOy nanostructure nitrided at 900 °C possesses high electrocatalytic activity for ORR with a four-electron process, high onset potential of −0.13 V, and superior durability compared with the commercial 10% Pt/C catalyst.


RSC Advances | 2017

ZSM-5 functionalized in situ with manganese ions for the catalytic oxidation of cyclohexane

X. R. Niu; Jianpeng Li; Lixian Zhang; Z. T. Lei; Xinyue Zhao; Chunxue Yang

We report the preparation of transition metal-containing ZSM-5 catalysts, which were active and selective for cyclohexane oxidation. Manganese ions were abundant and available for preparing Mn-containing ZSM-5 (Mn-ZSM-5) with an MFI structure. The catalytic properties of Mn-ZSM-5 for the mild oxidation of cyclohexane with hydrogen peroxide (H2O2) in the liquid phase were investigated. With different amounts of Mn4+ ions incorporated, the catalytic results varied with conversions of 21.21%, 20.72%, 30.66% and 19.53%, and selectivities to cyclohexanone and cyclohexanol (KA oil, SKA, mol%) of 96.26%, 94.11%, 97.41% and 97.27%. In summary, the prepared Mn-ZSM-5 catalyst is an effective catalyst for cyclohexane oxidation with H2O2 as an oxidant under mild conditions.


Electrochimica Acta | 2014

Nitrogen-doped activated carbon with micrometer-scale channels derived from luffa sponge fibers as electrocatalysts for oxygen reduction reaction with high stability in acidic media

Jianpeng Li; Shuguang Wang; Yaqi Ren; Zhonghua Ren; Yejun Qiu; Jie Yu


International Journal of Hydrogen Energy | 2015

The effect of different nitrogen sources on the electrocatalytic properties of nitrogen-doped electrospun carbon nanofibers for the oxygen reduction reaction

Shuguang Wang; Chenglong Dai; Jianpeng Li; Lei Zhao; Zhonghua Ren; Yaqi Ren; Yejun Qiu; Jie Yu


Electrochimica Acta | 2014

Enhanced electrochemical performance of TiO2 by Ti3+ doping using a facile solvothermal method as anode materials for lithium-ion batteries

Yaqi Ren; Jianpeng Li; Jie Yu


Applied Materials Today | 2016

Transition metal doped MnO2 nanosheets grown on internal surface of macroporous carbon for supercapacitors and oxygen reduction reaction electrocatalysts

Jianpeng Li; Yaqi Ren; Shuguang Wang; Zhonghua Ren; Jie Yu

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Jie Yu

Harbin Institute of Technology

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Yaqi Ren

Harbin Institute of Technology

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Shuguang Wang

Harbin Institute of Technology

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Zhonghua Ren

Harbin Institute of Technology

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Yejun Qiu

Harbin Institute of Technology

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Lei Zhao

Harbin Institute of Technology

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Chenglong Dai

Harbin Institute of Technology

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Chunxue Yang

Harbin Institute of Technology

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Lixian Zhang

Harbin Institute of Technology

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X. R. Niu

Harbin Institute of Technology

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